Repro_organoid · Direct reprogramming of human astrocytes into functional neurons in cerebral organoids derived from genome edited hiPSCs
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-03-01 → 2020-03-18
- EU contribution
- €171,461
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Direct reprogramming of human astrocytes into functional neurons in cerebral organoids derived from genome edited hiPSCs
The classical dogma of the central nervous system as an unchangeable entity has been refuted by the advent of direct lineage reprogramming of non-neuronal cells into neurons. During the last decade many studies including from the host laboratory have shown that brain-resident cells such as astroglia, NG2 glia, and brain pericytes, can be converted into functional induced neurons (iNs) in vitro. Transduction of glia with viruses encoding transcription factors that play key roles in neurogenesis during development were sufficient to direct astroglia towards a glutamatergic or GABAergic neuron fate. Recently, several groups, including the host lab, have succeeded in going a step further by demonstrating the feasibility of reprogramming in vivo. In fact, the host laboratory has published that Sox2 (alone or in combination with Ascl1) is able to convert NG2 glia into iNs in the injured adult mouse cerebral cortex. However, it remains unknown whether such lineage reprogramming in vivo can also be achieved in the case of human astrocytes which differ markedly from their rodent counterparts in size and complexity. To study lineage conversion of human astrocytes in vivo has been hindered by the lack of experimental systems that allow for the growth and maturation of human astrocytes within a human in vivo-like tissue context. In this project, I took advantage of the recent advent of human cerebral organoids technology. Several groups have in parallel developed the technology of cerebral organoids derived from human induced pluripotent stem cells (hiPSCs). These 3D systems enable the generation of miniature organ-like structures that mimic in many aspects human neurodevelopment. As occurs in normal brain development, in these cerebral organoids astrogliogenesis follows upon neurogenesis of deep and superficial layer neurons. In this proposal I defined the following objectives (Figure 1): 1- Generation of hiPSC lines allowing for inducible and cell-type specific expression of reprogramming factors by genome-editing 2- Characterization of astrogliogenesis in human cerebral organoids 3- Induction of human astroglia reprogramming in a human in vivo-like tissue context using cerebral organoids
Data: CORDIS, © European Union
Project objective
Work over the last decade has shown that the genetic programs underlying cell identity are still plastic in terminally differentiated cells. Direct lineage reprogramming takes advantage of this plasticity to induce cell fate conversions from one cell type into another. This is achieved by forced expression of specific fate determinants, usually transcription factors that regulate cell fate during development. This proposal will allow me to address the fundamental biological question whether human glia can be reprogrammed within a human tissue setting, and if so, whether this depends on their state of maturation. I propose to study the possibility of converting human glia into induced neurons within an in vivo-like tissue context. Towards this I will employ cutting-edge techniques such as generation of cerebral organoids from human induced pluripotent stem cells (hiPSCs) and genome-editing techniques to allow for inducible expression of reprogramming factors in human glia at different maturation stages within the cerebral organoids. In order to perform the hiPSCs genome-editing I will use CRISPR/Cas9 technology which will permit me to obtain stable, cell-type specific and inducible hiPSC lines. This novel and valuable genome editing strategy will facilitate the use of different reprogramming factors sets in order to optimize the reprogramming of glial cells into functional neurons. This study may pave the way for translating direct lineage reprogramming into new strategies for brain repair.
Original text from CORDIS.
Participants
- UNIVERSITAETSMEDIZIN DER JOHANNES GUTENBERG-UNIVERSITAET MAINZ · MainzCoordinatorGermany
Links
- View on CORDIS
- DOI: 10.3030/750624
- https://web.archive.org/web/20211018150012/https://www.unimedizin-mainz.de/physiolchemie/research/prof-dr-b-berninger.html
Data: CORDIS, © European Union
